Photocatalytic and Antimicrobial Properties of Cobalt-Doped Ag3PO4 Synthesized by Hydrothermal Method
Daniel Pais Ospina, Yurimiler Leyet Ruiz, David Comedi, Ronaldo Santos da Silva, Simone Ramos de Castro, Jéssica Araújo Marques, Rubens Lucas de Freitas Filho, Marcos A. Bolson, Ézio Sargentini-Júnior, Lázaro Miranda Carvalho, Oscar Marin-Ramirez, Francisco Xavier NobreAbstract
Pristine and cobalt-doped silver phosphate (Ag3PO4) containing nominal Co concentrations of 0.5, 1, 3, and 5 mol % were synthesized by a hydrothermal method to investigate the influence of Co incorporation on structural, optical, photocatalytic, antimicrobial, and antiphotocorrosion properties. X-ray diffraction and Rietveld refinement confirmed preservation of the cubic Ag3PO4 structure, while variations in lattice parameters, Raman modes, particle morphology, and surface chemical states indicated Co-induced local distortion and defect formation. EDX and ICP-OES confirmed the presence of cobalt, whereas XPS revealed modifications in the Ag and O surface environments. The fundamental optical bandgaps ranged from 2.37 to 2.46 eV, with additional sub-bandgap absorptions at 1.68 and 1.65 eV for AgP:3Co and AgP:5Co, respectively. Progressive photoluminescence quenching demonstrated that Co strongly modifies charge-relaxation pathways. Despite their low BET surface areas (0.953–5.608 m2 g–1), the doped materials displayed enhanced photocatalytic activity, showing that performance was not controlled by surface area alone. AgP:3Co exhibited the highest methylene-blue removal under simulated solar irradiation, reaching 93.26% after 20 min, with 120.26 × 10–3 min–1 and t1/2 = 5.76 min. Scavenger experiments identified photogenerated holes and hydroxyl radicals as the predominant oxidative species. After five reuse cycles, AgP:3Co retained approximately 87% activity and showed greater structural and morphological stability than pristine Ag3PO4. All samples also exhibited strain-dependent antimicrobial activity against reference strains and clinical isolates. Overall, 3 mol % Co provided the most favorable balance among defect chemistry, charge utilization, photocatalytic efficiency, antimicrobial activity, and resistance to photocorrosion.